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Detecting and adjusting ordinal and cardinal inconsistencies through a graphical and optimal approach in AHP models

机译:通过AHP模型中的图形化和最佳方法检测和调整序数和基数不一致

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摘要

An AHP model suffering from significant cardinal or/and ordinal inconsistencies in its preference matrix is difficult to rank rationally the alternatives. This study proposes an iterative method to assist a decision maker to detect/adjust inconsistencies and to represent his/her judgments properly. A Gower plot is first used to detect ordinal and cardinal inconsistencies. Two optimization models are then constructed to provide suggeted adjustments upon the request of the decision maker. By examining the Gower plots and numerical suggestions, the decision maker may revise iteratively the preference ratios to improve inconsistencies until all alternatives are ranked.
机译:在其偏好矩阵中存在严重的基数或序数不一致的AHP模型很难对替代方案进行合理排名。这项研究提出了一种迭代方法,以帮助决策者检测/调整不一致之处并正确地表达其判断。高尔图首先用于检测序数和基数不一致。然后构建两个优化模型,以根据决策者的要求提供建议的调整。通过检查高尔图和数值建议,决策者可以迭代地修改偏好率,以改善不一致之处,直到对所有替代方案进行排名。

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